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Senior Principal Enterprise Data Architect, AI Data Transformation
Job in
Louisville, Jefferson County, Kentucky, 40201, USA
Listed on 2026-07-29
Listing for:
GE Appliances, a Haier company
Full Time
position Listed on 2026-07-29
Job specializations:
-
IT/Tech
Data Engineering
Job Description & How to Apply Below
Position
Senior Principal Enterprise Data Architect, AI Data Transformation
LocationUSA, Louisville, KY
How You'll Create Possibilities AI Data Layer Enhancement & Transformation (40%)- Lead the architectural enhancement and evolution of the enterprise data layer, applying AI-first design principles to unify data across the enterprise value chain (R&D, supply chain, operations, and customer experience).
- Define, publish, and maintain the Enterprise AI Data Architecture Blueprint—the authoritative reference governing how data flows from source systems (e.g., ERP, CRM, PLM, IoT platforms) through transformation layers to AI models and business outcomes.
- Design and operationalize an Enterprise AI Data Readiness Framework that continuously assesses, scores, and improves data assets across five core dimensions:
Completeness, Consistency, Timeliness, Representativeness, and Fairness. - Architect and deploy enterprise-grade vector database infrastructure and build enterprise embedding pipelines that transform structured records, enterprise documents, product manuals, and operational logs into high-quality vector representations.
- Define the complete data architecture for Large Language Model (LLM) integration, including Retrieval-Augmented Generation (RAG) architecture to support enterprise copilots, customer service, and operational workflows.
- Design ultra-low latency data serving architectures and event-driven AI data pipelines that feed live AI models in production (e.g., real-time operational analytics, predictive maintenance, and customer insights).
- Establish an enterprise Synthetic Data Generation capability to augment scarce datasets, generate privacy-safe alternatives to sensitive data, and simulate operational edge cases.
- Serve as a strategic partner and governance leader within the EA team, applying and evolving enterprise architecture frameworks (TOGAF, Zachman) with AI-era extensions tailored for a large-scale, complex enterprise environment.
- Architect modern cloud data warehouse and Lakehouse solutions (e.g., Big Query) as the unified, ACID-compliant foundation for both analytical and AI/ML workloads on a single governed storage layer.
- Define and enforce data contracts between data producers (e.g., business operations, product engineering) and AI consumers across all domains to ensure schema, quality, freshness, and semantic consistency.
- Lead Master Data Management (MDM) strategy with AI entity resolution, enrichment, and disambiguation capabilities embedded in the MDM layer (covering Product, Material, Supplier, and Customer domains).
- Govern metadata management, data cataloging, and data lineage (e.g., Collibra) and design semantic/context data layers/Knowledge Graph infrastructure to map complex relationships between enterprise assets, suppliers, and business processes.
- Facilitate Architecture Review Board (ARB) processes for data and AI initiatives, ensuring alignment between project delivery and architectural intent.
- Align all data architecture decisions with regulatory and compliance requirements without compromising AI agility.
- Apply statistical expertise to validate data representativeness, distributions, class balance, and sampling strategies for AI training datasets (e.g., ensuring datasets accurately represent real-world operational realities).
- Serve as a trusted advisor and primary point of contact for business and IT stakeholders on AI data-governed initiatives.
- Build and maintain effective working relationships at all levels of DT Staff, Extended DT Staff, and business leadership.
- Proactively identify risks, issues, dependencies, and bottlenecks; implement mitigation strategies to keep teams moving forward.
- Partner with functional/business teams, DT teams, and other team members to solve problems collaboratively and deliver project objectives.
- Provide architectural oversight and define enterprise standards for AI/ML-optimized data pipelines, guiding data engineering delivery teams from raw ingestion through feature engineering.
- Define the architecture…
Position Requirements
10+ Years
work experience
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